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I have the following function which returns an array:

sub getUsers() {
    @users[0] = 'test';
    @users[1] = 'test2';
    return @users;
}

@temp = getUsers();
$i = @temp;

print "There are $i users";

But when I print it out, it appears as the number 2 (the count of the array). What's happening?

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You assign a scalar value to an array, thus it evaluates in scalar context which in Perl means give me the length of the array. –  squiguy Oct 31 '13 at 22:40
2  
@squiguy you got that backwards. :) This is assigning an array to a scalar value. –  friedo Oct 31 '13 at 22:45
    
@friedo Doh! Dyslexia strikes again... –  squiguy Oct 31 '13 at 22:54
    
related question stackoverflow.com/q/19369145/2140859 –  psxls Oct 31 '13 at 23:43
    
use warnings; –  toolic Nov 1 '13 at 1:09
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2 Answers 2

up vote 11 down vote accepted

$i = is a scalar assignment, giving the right side of the assignment scalar context; when you mention an array in scalar context, it returns its length.

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When you use an array in a scalar context, the array returns the number of items in the array.

From the Perldoc on Perldata

List assignment in scalar context returns the number of elements produced by the expression on the right side of the assignment...

When you say:

$i = @temp;

You are taking a list and attempting to assign it to a scalar variable. You are using that array in scalar context. Thus, you get the size of the array. (Not the largest index. That's what $#temp will get you.

You can use the scalar function to force an array in scalar context shen it might not otherwise be: ` print "There are " . scalar @foo . " items in the array\n";

The print function can take a list of times and not just a single string. It then uses the value of the variable $,to join the array.

If you want a list of items, use the join to join a list into a single string:

print "There are " . scalar @foo . " items in the array\n";
print "They are " . join ( ", " $foo ) . ".\n";
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$i = @temp; is a scalar assignment in void context. The paragraph your quoted is irrelevant. –  ikegami Nov 1 '13 at 1:11
    
Re "You are taking a list and attempting to assign it to a scalar variable. " Not true. There is no list anywhere in $i = @temp;. By your logic, $i = (5,6,7); should assign 3 when it actually assigns 7. –  ikegami Nov 1 '13 at 1:13
    
Reading this might be of use to you. –  ikegami Nov 1 '13 at 1:15
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